Zhang Yonglei, Bian Yinghui, Lv Zichuan, Han Yuqing, Lin Meng-Chang
College of Electrical Engineering and Automation, Shandong University of Science and Technology, Qingdao 266590, P. R. China.
ACS Appl Mater Interfaces. 2021 Aug 11;13(31):37091-37101. doi: 10.1021/acsami.1c08782. Epub 2021 Aug 1.
Electrochemical cells with aluminum (Al) as the active material offer the benefits of high energy density, low cost, and high safety. Although several research groups have assembled rechargeable Al//MO (M = Mn, V, etc) cells with 2 aqueous Al trifluoromethanesulfonate as an electrolyte and demonstrated the importance of the artificial solid electrolyte interphase (ASEI) on the Al anode for realizing high rechargeable capacity, the reactions of the Al anode in such cells remain underexplored. Herein, we investigate the effects of the ASEI on the charge/discharge cycling stability and activity of Al cells with the abovementioned aqueous electrolyte and reveal that this interphase provides chloride anions to induce the corrosion of Al rather than to support the transportation of Al ions during charge/discharge. Regardless of the ASEI presence/absence, the main reactions at the Al anode during charge/discharge cycling are identified as oxidation and gas evolution, which suggests that the reduction of Al in the employed electrolyte is irreversible. The simple introduction of chloride anions (e.g., 0.15 NaCl) into the electrolyte is shown to allow the realization of an Al//MnO cell with superior performance (discharge working voltage ≈ 1.5 V and specific capacity = 250 mA h/g). Thus, the present work unveils the mechanisms of reactions occurring at the Al anode of aqueous electrolyte Al cells to support their further development.
以铝(Al)作为活性材料的电化学电池具有高能量密度、低成本和高安全性等优点。尽管几个研究小组已经组装了以三氟甲磺酸铝水溶液为电解质的可充电Al//MO(M = Mn、V等)电池,并证明了铝阳极上人工固体电解质界面(ASEI)对于实现高可充电容量的重要性,但此类电池中铝阳极的反应仍未得到充分研究。在此,我们研究了ASEI对上述水性电解质铝电池充放电循环稳定性和活性的影响,并揭示该界面提供氯离子以诱导铝的腐蚀,而不是在充放电过程中支持铝离子的传输。无论ASEI是否存在,充放电循环过程中铝阳极的主要反应均被确定为氧化和气体析出,这表明在所使用的电解质中铝的还原是不可逆的。将氯离子(例如0.15 M NaCl)简单引入电解质中可实现具有优异性能的Al//MnO电池(放电工作电压≈1.5 V,比容量 = 250 mA h/g)。因此,本工作揭示了水性电解质铝电池铝阳极发生的反应机制,以支持其进一步发展。